BACKGROUND OF THE INVENTION
Field of the Invention
[0001] The present invention relates to a working fluid which comprises plural halogenated
hydrocarbons and is used in air conditioners and heat pumps and the like.
Description of the Related Art
[0002] Hitherto, as working fluids in air conditioners, heat pumps and the like, are used
halogenated hydrocarbons derived from methane or ethane, which are also called as
fluorinated halocarbons. They work at such utilization temperature that a condensation
temperature and/or an evaporation temperature are from about 0 (zero) to about 50°C.
Among them, chlorodifluoromethane
(CHClF₂, R22)
with a boiling point of -40.8°C is widely used as a working fluid in an air conditioner
for a building and a large size refrigeration system.
[0003] Recently, depletion of the ozone layer in the stratosphere with the fluorinated halocarbon
is seriously discussed as one of global environmental problems, and amounts to be
used and produced of some fully halogenated chlorofluorocarbons (CFCs) which have
high ozone depletion potential are limited by the Montreal Protocol. In future, their
use and production will be banned.
[0004] R22 has an ozone depletion potential (hereinafter referred to as "ODP") of 0.05 when
ODP of trichlorofluoromethane
(CC1₃F, R11)
is defined to be 1 (one). Though R22 is not a CFC, its production and use are expected
to increase and it is expected that R22 will have significant influences on the human
living in future, since the air conditioners and the heat pumps are and will be widely
used. Therefore, it is highly desired to quickly develop a working fluid which has
a small ODP and can be used as a substitute for R22.
SUMMARY OF THE INVENTION
[0005] An object of the present invention is to provide a working fluid which has less influence
on the ozone layer in the stratosphere and can be used as a substitute for R22.
[0006] According to the present invention, there is provided a working fluid comprising
difluoroethane
(C₂H₄F₂),
and at least two fluorinated hydrocarbon having a boiling point of not higher than
-40°C under atmospheric pressure selected from the group consisting of methane derivatives
and ethane derivatives which consist of one or two carbon atoms, hydrogen atoms and
fluorine atoms (hereinafter referred to as "fluorinated methane or ethane derivative").
BRIEF DESCRIPTION OF THE DRAWINGS
[0007] Figs. 1 to 6 are ternary composition diagrams of the working fluids in Examples 1
to 6, respectively.
DETAILED DESCRIPTION OF THE INVENTION
[0009] Among the components of the working fluid of the present invention, difluoroethane
has substantially no ozone depletion potential, namely its ODP is substantially zero
and it contains no chlorine atom in its molecular structure.
[0010] Since the fluorinated methane or ethane derivatives have no chlorine atom in molecular
structures, they have substantially no ozone depletion potential.
[0011] Among the fluorinated methane or ethane derivatives, trifluoromethane
(CHF₃, ODP = 0)
, difluoromethane
(CH₂F₂, ODP = 0)
, pentafluoroethane
(C₂HF₅, ODP = 0)
and trifluoroethane
(C₂H₃F₃, ODP = 0)
are preferred.
[0012] The working fluid of the present invention has much smaller influences on the ozone
layer in the stratosphere than R22, since it comprises difluoroethane which has substantially
no ozone depletion potential
(ODP = 0)
and the fluorinated methane or ethane derivatives having the boiling point not higher
than -40°C which contain no chlorine atom in the molecular structure and have substantially
no ozone depletion potential.
[0013] In a specific composition range, the working fluid of the present invention has substantially
the same vapor pressure as R22 in a temperature range between about 0°C to about 50°C,
and is suitable as a working fluid which can be used in presently used apparatuses
as a substitute for R22.
[0014] The working fluid of the present invention is expected to have very small ODP, namely
substantially 0 (zero).
[0015] In addition, since the working fluid of the present invention is a non-azeotropic
mixture and has a temperature gradient in the condensing and evaporating processes,
a higher coefficient of performance (COP) than R22 is expected when Lorenz cycle in
which a temperature difference from a heat source is decreased is assembled.
[0016] The fluorinated halocarbons having the ozone depletion potential tend to have large
global warming potential (hereinafter referred to as "GWP") when their ODP is large.
Since the working fluid of the present invention comprises the above three essential
components, its GWP may be substantially the same as or smaller than that of R22.
Therefore, the working fluid of the present invention may have smaller influence on
the global warming.
PREFERRED EMBODIMENTS OF THE INVENTION
[0017] The present invention will be illustrated by following Examples.
Example 1
[0018] Fig. 1 shows a ternary composition diagram indicating equilibrium states of a mixture
consisting of trifluoromethane (R23), difluoromethane (R32) and 1,1-difluoroethane
(R152a) at specific temperatures under specific pressure in a triangular coordinate.
[0019] In the triangular coordinate, in the counterclockwise direction from the top vertex,
single compounds are assigned on the vertexes from a compound having the lowest boiling
point to one having the highest boiling point. A composition (weight ratio) of the
three compounds at one point on the triangular coordinate is expressed by a ratio
of distances between said point and the opposite sides. The distance between said
point and the opposite side corresponds to a proportion of the compound which is assigned
to the vertex which faces said side.
[0020] In Fig. 1, the lines 1 are phase equilibrium lines of the mixture at 0°C under pressure
of 4.044 kg/cm²G. These temperature and pressure correspond to a saturated state of
R22. The upper one of the phase equilibrium lines 1 (corresponding to R22 at 0°C)
is a saturated vapor line, and the lower one is a saturated liquid line. In the area
between these two lines, the mixture is in the phase equilibrium state. The lines
2 are phase equilibrium lines of the mixture at 50°C under pressure of 18.782 kg/cm²G.
These temperature and pressure correspond to a saturated state of R22.
[0021] If R23 alone is used, it exceeds the critical temperature at 50°C. However, the mixture
has the saturated state so that it can be used in the air conditioner or heat pump
which has the utilization temperature range between about 0°C and about 50°C.
[0022] As understood from Fig. 1, the mixture comprising about 0 to about 50 % by weight
(for example, about 1 to about 50 % by weight) of R23, about 0 to about 60 % by weight
(for example, about 1 to about 60 % by weight) of R32 and about 40 to about 90 % by
weight of R152a is preferred, since it has substantially the same vapor pressure as
R22 in the utilization temperature range between about 0°C and about 50°C. Further,
the mixture comprising about 0 to about 40 % by weight (for example, about 1 to about
40 % by weight) of R23, about 0 to about 50 % by weight (for example, about 1 to about
50 % by weight) of R32 and about 50 to about 85 % by weight of R152a is more preferred,
since it has substantially the same vapor pressure as R22 at all the utilizing temperatures
between 0°C and 50°C.
[0023] The compositions of the working fluids at the points A1 to F1 in Fig. 1 are shown
in Table 1.

[0024] The points A1, B1 and C1 are on the saturated vapor line of the phase equilibrium
lines 2 (corresponding to R22 at 50°C), and the points D1, E1 and F1 are on the saturated
liquid line of the phase equilibrium lines 2. Further, all of them are in the area
between the saturated vapor line and the saturated liquid line of the phase equilibrium
lines 1 (corresponding to R22 at 0°C). Therefore, the mixture is in the phase equilibrium
state at 0°C under pressure of 4.044 kg/cm²G which correspond to the saturated state
of R22.
[0025] Then, the working fluid having the composition in Table 1 is in the saturated state
or the phase equilibrium state under the saturated vapor pressure condition of R22
at 0°C and 50°C, so that, in the utilization temperature range between about 0°C and
about 50°C, the working fluid has substantially the same condensation and evaporation
temperatures as R22 when operated under the saturated vapor pressure of R22 at said
temperatures.
[0026] In the above, the mixtures having the compositions on the phase equilibrium lines
2 (corresponding to R22 at 50°C) have been explained. In addition, when working fluids
having compositions in the area inside the points A1 to F1, namely those having compositions
which realize the phase equilibrium states at 0°C under pressure of 4.044 kg/cm
2G and at 50°C under pressure of 18.782 kg/cm²G both corresponding to the saturated
state of R22 are operated in the similar way to the above, condensation and evaporation
temperatures which are substantially the same as those of R22 can be achieved in the
utilization temperature range between about 0°C and about 50°C.
[0027] Accordingly, from Fig. 1, the mixture comprising about 0 to about 50 % by weight
(for example, about 1 to about 50 % by weight) of trifluoromethane, about 0 to about
60 % by weight (for example, about 1 to about 60 % by weight) of difluoromethane and
about 40 to about 90 % by weight of difluoroethane is preferred, since it has substantially
the same vapor pressure as R22 in the utilization temperature range between about
0°C and about 50°C. Further, the mixture comprising about 0 to about 40 % by weight
(for example, about 1 to about 40 % by weight) of trifluoromethane, about 0 to about
50 % by weight (for example, about 1 to about 50 % by weight) of difluoromethane and
about 50 to about 85 % by weight of difluoroethane is more preferred, since it has
substantially the same vapor pressure as R22 at all the utilizing temperatures between
0°C and 50°C.
[0028] Since the working fluids in Example 1 are expected to have the ODP of 0 (zero), they
are very promising as substitute working fluids for R22.
Example 2
[0029] Fig. 2 shows a ternary composition diagram indicating equilibrium states of a mixture
consisting of R23, pentafluoroethane (R125) and R152a at specific temperatures under
specific pressure in a triangular coordinate.
[0030] The compositions of the working fluids at the points A1 to F1 in Fig. 2 are shown
in Table 2.

[0031] In this case, the mixture comprising about 0 to about 50 % by weight (for example,
about 1 to about 50 % by weight) of trifluoromethane, about 0 to about 85 % by weight
(for example, about 1 to about 85 % by weight) of pentafluoroethane and about 15 to
about 90 % by weight of difluoroethane is preferred, and further, the mixture comprising
about 0 to about 40 % by weight (for example, about 1 to about 40 % by weight) of
trifluoromethane, about 0 to about 80 % by weight (for example, about 1 to about 80
% by weight) of pentafluoroethane and about 20 to about 85 % by weight of difluoroethane
is more preferred.
[0032] Since the working fluids in Example 2 are expected to have the ODP of 0 (zero), they
are very promising as substitute working fluids for R22.
Example 3
[0033] Fig. 3 shows a ternary composition diagram indicating equilibrium states of a mixture
consisting of R23, 1,1,1-trifluoroethane (R143a) and R152a at specific temperatures
under specific pressure in a triangular coordinate.
[0034] The compositions of the working fluids at the points A1 to F1 in Fig. 3 are shown
in Table 3.

[0035] In this case, the mixture comprising about 0 to about 50 % by weight (for example,
about 1 to about 50 % by weight) of trifluoromethane, about 0 to about 80 % by weight
(for example, about 1 to about 80 % by weight) of trifluoroethane and about 20 to
about 90 % by weight of difluoroethane is preferred, and further, the mixture comprising
about 0 to about 40 % by weight (for example, about 1 to about 40 % by weight) of
trifluoromethane, about 0 to about 80 % by weight (for example, about 1 to about 80
% by weight) of trifluoroethane and about 20 to about 85 % by weight of difluoroethane
is more preferred.
[0036] Since the working fluids in Example 3 are expected to have the ODP of 0 (zero), they
are very promising as substitute working fluids for R22.
Example 4
[0037] Fig. 4 shows a ternary composition diagram indicating equilibrium states of a mixture
consisting of R32, R125 and R152a at specific temperatures under specific pressure
in a triangular coordinate.
[0038] In Fig. 4, the lines 1 are phase equilibrium lines of the mixture at 0°C under pressure
of 4.044 kg/cm²G. These temperature and pressure correspond to a saturated state of
R22. The upper one of the phase equilibrium lines 1 (corresponding to R22 at 0°C)
is a saturated vapor line, and the lower one is a saturated liquid line. In the area
between these two lines, the mixture is in the phase equilibrium state. The lines
2 are phase equilibrium lines of the mixture at 50°C under pressure of 18.782 kg/cm²G.
These temperature and pressure correspond to a saturated state of R22.
[0039] As understood from Fig. 4, the mixture comprising about 0 to about 60 % by weight
(for example, about 1 to about 60 % by weight) of R32, about 0 to about 85 % by weight
(for example, about 1 to about 85 % by weight) of R125 and about 15 to about 65 %
by weight of R152a is preferred, since it has substantially the same vapor pressure
as R22 in the utilization temperature range between about 0°C and about 50°C. Further,
the mixture comprising about 0 to about 50 % by weight (for example, about 1 to about
50 % by weight) of R32, about 0 to about 80 % by weight (for example, about 1 to about
80 % by weight) of R125 and about 20 to about 65 % by weight of R152a is more preferred,
since it has substantially the same vapor pressure as R22 at all the utilizing temperatures
between 0°C and 50°C.
[0040] The compositions of the working fluids at the points A1 to F1 in Fig. 4 are shown
in Table 4.

[0041] The points A1, B1 and C1 are on the saturated vapor line of the phase equilibrium
lines 2 (corresponding to R22 at 50°C), and the points D1 and E1 are on the saturated
liquid line of the phase equilibrium lines 2. Further, all of them are in the area
between the saturated vapor line and the saturated liquid line of the phase equilibrium
lines 1 (corresponding to R22 at 0°C). Therefore, the mixtures on these points are
in the phase equilibrium state at 0°C under pressure of 4.044 kg/cm²G which correspond
to the saturated state of R22.
[0042] In addition, the point F1 is on the saturated liquid line of the phase equilibrium
lines 1 (corresponding to R22 at 0°C) and in the range between the saturated vapor
line and the saturated liquid line of the phase equilibrium lines 2 (corresponding
to R22 at 50°C). Therefore, the mixture is in the phase equilibrium state at 50°C
under pressure of 18.782 kg/cm²G which correspond to the saturated state of R22.
[0043] Then, the working fluid having the composition in Table 4 is in the saturated state
or the phase equilibrium state under the saturated vapor pressure condition of R22
at 0°C and 50°C, so that, in the utilization temperature range between about 0°C and
about 50°C, the working fluid has substantially the same condensation and evaporation
temperatures as R22 when operated under the saturated vapor pressure of R22 at said
temperatures.
[0044] In the above, the mixtures having the compositions on the phase equilibrium lines
1 or 2 (corresponding to R22 at 0°C or 50°C, respectively) have been explained. In
addition, when working fluids having compositions in the area inside the points A1
to F1, namely those having compositions which realize-the phase equilibrium states
at 0°C under pressure of 4.044 kg/cm²G and at 50°C under pressure of 18.782 kg/cm²G
both corresponding to the saturated state of R22 are operated in the similar way to
the above, condensation and evaporation temperatures which are substantially the same
as those of R22 can be achieved in the utilization temperature range between about
0°C and about 50°C.
[0045] Accordingly, from Fig. 4, the mixture comprising about 0 to about 60 % by weight
(for example, about 1 to about 60 % by weight) of difluoromethane, about 0 to about
85 % by weight (for example, about 1 to about 85 % by weight) of pentafluoroethane
and about 15 to about 65 % by weight of difluoroethane is preferred, since it has
substantially the same vapor pressure as R22 in the utilization temperature range
between about 0°C and about 50°C. Further, the mixture comprising about 0 to about
50 % by weight (for example, about 1 to about 50 % by weight) of difluoromethane,
about 0 to about 80 % by weight (for example, about 1 to about 80 % by weight) of
pentafluoroethane and about 20 to about 65 % by weight of difluoroethane is more preferred,
since it has substantially the same vapor pressure as R22 at all the utilizing temperatures
between 0°C and 50°C.
[0046] Since the working fluids in Example 4 are expected to have the ODP of 0 (zero), they
are very promising as substitute working fluids for R22.
Example 5
[0047] Fig. 5 shows a ternary composition diagram indicating equilibrium states of a mixture
consisting of R32, R143a and R152a at specific temperatures under specific pressure
in a triangular coordinate.
[0048] The compositions of the working fluids at the points A1 to F1 in Fig. 5 are shown
in Table 5.

[0049] In this case, the mixture comprising about 0 to about 60 % by weight (for example,
about 1 to about 60 % by weight) of difluoromethane, about 0 to about 80 % by weight
(for example, about 1 to about 80 % by weight) of trifluoroethane and about 20 to
about 65 % by weight of difluoroethane is preferred, and further, the mixture comprising
about 0 to about 50 % by weight (for example, about 1 to about 50 % by weight) of
difluoromethane, about 0 to about 80 % by weight (for example, about 1 to about 80
% by weight) of trifluoroethane and about 20 to about 65 % by weight of difluoroethane
is more preferred.
[0050] Since the working fluids in Example 5 are expected to have the ODP of 0 (zero), they
are very promising as substitute working fluids for R22.
Example 6
[0051] Fig. 6 shows a ternary composition diagram indicating equilibrium states of a mixture
consisting of R125, R143a and R152a at specific temperatures under specific pressure
in a triangular coordinate.
[0052] The compositions of the working fluids at the points A1 to F1 in Fig. 6 are shown
in Table 6.

[0053] In this case, the mixture comprising about 0 to about 85 % by weight (for example,
about 1 to about 85 % by weight) of pentafluoroethane, about 0 to about 80 % by weight
(for example, about 1 to about 80 % by weight) of trifluoroethane and about 15 to
about 35 % by weight of difluoroethane is preferred, and further, the mixture comprising
about 0 to about 80 % by weight (for example, about 1 to about 80 % by weight) of
pentafluoroethane, about 0 to about 80 % by weight (for example, about 1 to about
80 % by weight) of trifluoroethane and about 20 to about 30 % by weight of difluoroethane
is more preferred.
[0054] Since the working fluids in Example 6 are expected to have the ODP of 0 (zero), they
are very promising as substitute working fluids for R22.
[0055] From the results of above Examples, the working fluid of the present invention preferably
comprises 15 to 90 % by weight of difluoroethane and at least two fluorinated methane
or ethane derivative selected from the group consisting of not more than 50 % by weight
of trifluoromethane, not more than 60 % by weight of difluoromethane, not more than
85 % by weight of pentafluoroethane and not more than 80 % by weight of trifluoroethane.
More preferably, the working fluid of the present invention comprises 20 to 85 % by
weight of difluoroethane and at least two fluorinated methane or ethane derivative
selected from the group consisting of not more than 40 % by weight of trifluoromethane,
not more than 50 % by weight of difluoromethane, not more than 80 % by weight of pentafluoroethane
and not more than 80 % by weight of trifluoroethane.
[0056] In the above Examples, the mixtures contain three fluorinated halocarbons, although
it is possible to mix four or more fluorinated halocarbons including structural isomers.
In such case, preferably, the mixture comprises difluoroethane as the first component
and, as the second and third components two fluorinated halocarbons selected from
the group consisting of trifluoromethane, difluoromethane, pentafluoroethane and trifluoroethane.
1. A working fluid comprising difluoroethane and at least two fluorinated hydrocarbon
having a boiling point of not higher than -40°C under atmospheric pressure selected
from the group consisting of methane derivatives and ethane derivatives which consist
of one or two carbon atoms, hydrogen atoms and fluorine atoms.
2. The working fluid as claimed in claim 1, which comprises 15 to 90 % by weight of difluoroethane.
3. The working fluid as claimed in claim 1, wherein said at least two fluorinated hydrocarbons
are selected from the group consisting of trifluoromethane, difluoromethane, pentafluoroethane
and trifluoroethane.
4. The working fluid as claimed in claim 1, which comprises 15 to 90 % by weight of difluoroethane
and at least two fluorinated hydrocarbons selected from the group consisting of not
more than 50 % by weight of trifluoromethane, not more than 60 % by weight of difluoromethane,
not more than 85 % by weight of pentafluoroethane and not more than 80 % by weight
of trifluoroethane.
5. The working fluid as claimed in claim 1, which comprises 20 to 85 % by weight of difluoroethane
and at least two fluorinated hydrocarbons selected from the group consisting of not
more than 40 % by weight of trifluoromethane, not more than 50 % by weight of difluoromethane,
not more than 80 % by weight of pentafluoroethane and not more than 80 % by weight
of trifluoroethane.
6. The working fluid as claimed in claim 1, which comprises 40 to 90 % by weight of difluoroethane,
not more than 50 % by weight of trifluoromethane and not more than 60 % by weight
of difluoromethane.
7. The working fluid as claimed in claim 6, which comprises 50 to 85 % by weight of difluoroethane,
not more than 40 % by weight of trifluoromethane and not more than 50 % by weight
of difluoromethane.
8. The working fluid as claimed in claim 1, which comprises 15 to 90 % by weight of difluoroethane,
not more than 50 % by weight of trifluoromethane and not more than 85 % by weight
of pentafluoroethane.
9. The working fluid as claimed in claim 8, which comprises 20 to 85 % by weight of difluoroethane',
not more than 40 % by weight of trifluoromethane and not more than 80 % by weight
of pentafluoroethane.
10. The working fluid as claimed in claim 1, which comprises 20 to 90 % by weight of difluoroethane,
not more than 50 % by weight of trifluoromethane and not more than 80 % by weight
of trifluoroethane.
11. The working fluid as claimed in claim 10, which comprises 20 to 85 % by weight of
difluoroethane, not more than 40 % by weight of trifluoromethane and not more than
80 % by weight of trifluoroethane.
12. The working fluid as claimed in claim 1, which comprises 15 to 65 % by weight of difluoroethane,
not more than 60 % by weight of difluoromethane and not more than 85 % by weight of
pentafluoroethane.
13. The working fluid as claimed in claim l3, which comprises 20 to 65 % by weight of
difluoroethane, not more than 50 % by weight of difluoromethane and not more than
80 % by weight of pentafluoroethane.
14. The working fluid as claimed in claim 1, which comprises 20 to 65 % by weight of difluoroethane,
not more than 60 % by weight of difluoromethane and not more than 80 % by weight of
trifluoroethane.
15. The working fluid as claimed in claim 14, which comprises 20 to 65 % by weight of
difluoroethane, not more than 50 % by weight of difluoromethane and not more than
80 % by weight of trifluoroethane.
16. The working fluid as claimed in claim 1, which comprises 15 to 35 % by weight of difluoroethane,
not more than 85 % by weight of pentafluoroethane and not more than 80% by weight
of trifluoroethane.
17. The working fluid as claimed in claim 16, which comprises 20 to 30 % by weight of
difluoroethane, not more than 80 %` by weight of pentafluoroethane and not more than
80 % by weight of trifluoroethane.